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基于分子印迹聚合物的咖啡因仿生压电石英传感器。

Biomimetic piezoelectric quartz sensor for caffeine based on a molecularly imprinted polymer.

作者信息

Ebarvia Benilda S, Binag Christina A, Sevilla Fortunato

机构信息

Industrial Technology Development Institute, Department of Science and Technology, Bicutan, Taguig, Metro, Manila, Philippines.

出版信息

Anal Bioanal Chem. 2004 Mar;378(5):1331-7. doi: 10.1007/s00216-003-2433-9. Epub 2004 Jan 27.

Abstract

A piezoelectric quartz sensor coated with molecularly imprinted polymer (MIP) for caffeine was developed. The MIP was prepared by co-polymerizing methacrylic acid (MAA) and ethylene glycol dimethacrylate (EDMA) in the presence of azobis(isobutyronitrile) as initiator, caffeine as template molecule, and chloroform as solvent. The MIP suspension in polyvinyl chloride/tetrahydrofuran (6:2:1 w/w/v) solution was spin coated onto the surface of the electrode of a 10 MHz AT-cut quartz crystal. The sensor exhibited a linear relationship between the frequency shift and caffeine concentration in the range of 1 x 10(-7) mg mL(-1 )up to 1 x 10(-3) mg mL(-1) [correlation coefficient ( r)=0.9935] in a stopped flow measurement mode. It has a sensitivity of about 24 Hz/ln(concentration, mg mL(-1)). A steady-state response was achieved in less than 10 min. The performance characteristic of the sensor shows a promising and inexpensive alternative method of detecting caffeine. Surface studies were carried out for the reagent phase of the sensor using SEM, AFM, and XPS analysis in order to elucidate the imprinting of the caffeine molecule. The SEM micrograph, AFM image, and XPS spectra confirmed the removal of caffeine by Soxhlet extraction in the imprinting process and the rebinding of caffeine to the MIP sensing layer during measurement.

摘要

研制了一种涂覆有咖啡因分子印迹聚合物(MIP)的压电石英传感器。MIP是在偶氮二异丁腈作为引发剂、咖啡因作为模板分子以及氯仿作为溶剂的存在下,通过甲基丙烯酸(MAA)和乙二醇二甲基丙烯酸酯(EDMA)共聚制备的。将MIP悬浮液在聚氯乙烯/四氢呋喃(6:2:1 w/w/v)溶液中旋涂到10 MHz AT切割石英晶体电极表面。在停流测量模式下,该传感器在1×10⁻⁷ mg mL⁻¹至1×10⁻³ mg mL⁻¹范围内,频率偏移与咖啡因浓度之间呈现线性关系[相关系数(r)=0.9935]。其灵敏度约为24 Hz/ln(浓度,mg mL⁻¹)。在不到10分钟内实现了稳态响应。该传感器的性能特性显示出一种有前景且廉价的检测咖啡因的替代方法。为了阐明咖啡因分子的印迹情况,使用扫描电子显微镜(SEM)、原子力显微镜(AFM)和X射线光电子能谱(XPS)分析对传感器的试剂相进行了表面研究。SEM显微照片、AFM图像和XPS光谱证实了在印迹过程中通过索氏提取去除了咖啡因,以及在测量过程中咖啡因与MIP传感层的重新结合。

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